一、题目

Given a string and an offset, rotate string by offset. (rotate from left to right)

Example

Given "abcdefg".

offset=0 => "abcdefg" offset=1 => "gabcdef" offset=2 => "fgabcde" offset=3 => "efgabcd"

Challenge

Rotate in-place with O(1) extra memory.

给定一个字符串和一个偏移量,根据偏移量旋转字符串(从左向右旋转)

二、解题思路

常见的翻转法应用题,仔细观察规律可知翻转的分割点在从数组末尾数起的offset位置。先翻转前半部分,随后翻转后半部分,最后整体翻转。

三、解题代码

public class Solution {
    /*
     * param A: A string
     * param offset: Rotate string with offset.
     * return: Rotated string.
     */
    public char[] rotateString(char[] A, int offset) {
        if (A == null || A.length == 0) {
            return A;
        }

        int len = A.length;
        offset %= len;
        reverse(A, 0, len - offset - 1);
        reverse(A, len - offset, len - 1);
        reverse(A, 0, len - 1);

        return A;
    }

    private void reverse(char[] str, int start, int end) {
        while (start < end) {
            char temp = str[start];
            str[start] = str[end];
            str[end] = temp;
            start++;
            end--;
        }
    }
}
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